Cosmology and neutrino mass with the Minimum Spanning Tree
Abstract
The information content of the minimum spanning tree (MST), used to capture higher-order statistics and information from the cosmic web, is compared to that of the power spectrum for a CDM model. The measurements are made in redshift space using haloes from the Quijote simulation of mass in a box of length . The power spectrum multipoles (monopole and quadrupole) are computed for Fourier modes in the range . For comparison the MST is measured with a minimum length scale of . Combining the MST and power spectrum allows for many of the individual degeneracies to be broken; on its own the MST provides tighter constraints on the sum of neutrino masses and cosmological parameters , , and but the power spectrum alone provides tighter constraints on and . Combined we find constraints that are a factor of two (or greater) on all parameters with respect to the power spectrum (for there is a factor of four improvement). These improvements appear to be driven by the MST's sensitivity to small scale clustering, where the effect of neutrino free-streaming becomes relevant, and high-order statistical information in the cosmic web. The MST is shown to be a powerful tool for cosmology and neutrino mass studies, and therefore could play a pivotal role in ongoing and future galaxy redshift surveys (such as DES, DESI, \emph{Euclid}, and Rubin-LSST).
Cite
@article{arxiv.2111.12088,
title = {Cosmology and neutrino mass with the Minimum Spanning Tree},
author = {Krishna Naidoo and Elena Massara and Ofer Lahav},
journal= {arXiv preprint arXiv:2111.12088},
year = {2022}
}
Comments
15 pages, 5 figures (+6 in appendix), accepted for publication in MNRAS